Engineering Pre-vascularized Scaffolds for Bone Regeneration

被引:89
作者
Barabaschi, Giada D. G. [1 ,2 ]
Manoharan, Vijayan [3 ]
Li, Qing [1 ]
Bertassoni, Luiz E. [2 ,4 ,5 ]
机构
[1] Univ Sydney, Dept Aerosp Mech & Mechatron Engn, Sydney, NSW 2006, Australia
[2] Univ Sydney, Fac Dent, Bioengn Lab, Sydney, NSW 2006, Australia
[3] Univ Kansas, Dept Chem & Petr Engn, Lawrence, KS 66045 USA
[4] Oregon Hlth & Sci Univ, Ctr Regenerat Med, Portland, OR 97201 USA
[5] Oregon Hlth & Sci Univ, Dept Restorat Dent, Div Biomat & Biomech, Portland, OR 97201 USA
来源
ENGINEERING MINERALIZED AND LOAD BEARING TISSUES | 2015年 / 881卷
关键词
Vascularization; Bone regeneration; Bone scaffolds; Angiogenesis; Microfabrication; Bioprinting; Tissue engineering; ENDOTHELIAL GROWTH-FACTOR; HUMAN CORTICAL BONE; IN-VITRO; MICROVASCULAR NETWORKS; PROMOTING ANGIOGENESIS; CELL MIGRATION; HYDROGELS; DELIVERY; REPAIR; TUBULOGENESIS;
D O I
10.1007/978-3-319-22345-2_5
中图分类号
Q813 [细胞工程];
学科分类号
摘要
Survival of functional tissue constructs of clinically relevant size depends on the formation of an organized and uniformly distributed network of blood vessels and capillaries. The lack of such vasculature leads to spatio-temporal gradients in oxygen, nutrients and accumulation of waste products inside engineered tissue constructs resulting in negative biological events at the core of the scaffold. Unavailability of a well-defined vasculature also results in ineffective integration of scaffolds to the host vasculature upon implantation. Arguably, one of the greatest challenges in engineering clinically relevant bone substitutes, therefore, has been the development of vascularized bone scaffolds. Various approaches ranging from peptide and growth factor functionalized biomaterials to hyperporous scaffolds have been proposed to address this problem with reasonable success. An emerging alternative to address this challenge has been the fabrication of pre-vascularized scaffolds by taking advantage of biomanufacturing techniques, such as soft-and photo-lithography or 3D bioprinting, and cell-based approaches, where functional capillaries are engineered in cell-laden scaffolds prior to implantation. These strategies seek to engineer pre-vascularized tissues in vitro, allowing for improved anastomosis with the host vasculature upon implantation, while also improving cell viability and tissue development in vitro. This book chapter provides an overview of recent methods to engineer pre-vascularized scaffolds for bone regeneration. We first review the development of functional blood capillaries in bony structures and discuss controlled delivery of growth factors, co-culture systems, and on-chip studies to engineer vascularized cell-laden biomaterials. Lastly, we review recent studies using microfabrication techniques and 3D printing to engineer pre-vascularized scaffolds for bone tissue engineering.
引用
收藏
页码:79 / 94
页数:16
相关论文
共 106 条
[1]   Regulating bone formation via controlled scaffold degradation [J].
Alsberg, E ;
Kong, HJ ;
Hirano, Y ;
Smith, MK ;
Albeiruti, A ;
Mooney, DJ .
JOURNAL OF DENTAL RESEARCH, 2003, 82 (11) :903-908
[2]   25th Anniversary Article: Rational Design and Applications of Hydrogels in Regenerative Medicine [J].
Annabi, Nasim ;
Tamayol, Ali ;
Uquillas, Jorge Alfredo ;
Akbari, Mohsen ;
Bertassoni, Luiz E. ;
Cha, Chaenyung ;
Camci-Unal, Gulden ;
Dokmeci, Mehmet R. ;
Peppas, Nicholas A. ;
Khademhosseini, Ali .
ADVANCED MATERIALS, 2014, 26 (01) :85-124
[3]   Building Vascular Networks [J].
Bae, Hojae ;
Puranik, Amey S. ;
Gauvin, Robert ;
Edalat, Faramarz ;
Carrillo-Conde, Brenda ;
Peppas, Nicholas A. ;
Khademhosseini, Ali .
SCIENCE TRANSLATIONAL MEDICINE, 2012, 4 (160)
[4]   Geometric control of vascular networks to enhance engineered tissue integration and function [J].
Baranski, Jan D. ;
Chaturvedi, Ritika R. ;
Stevens, Kelly R. ;
Eyckmans, Jeroen ;
Carvalho, Brian ;
Solorzano, Ricardo D. ;
Yang, Michael T. ;
Miller, Jordan S. ;
Bhatia, Sangeeta N. ;
Chen, Christopher S. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2013, 110 (19) :7586-7591
[5]   The role of pericytes in blood-vessel formation and maintenance [J].
Bergers, G ;
Song, S .
NEURO-ONCOLOGY, 2005, 7 (04) :452-464
[6]   Hydrogel bioprinted microchannel networks for vascularization of tissue engineering constructs [J].
Bertassoni, Luiz E. ;
Cecconi, Martina ;
Manoharan, Vijayan ;
Nikkhah, Mehdi ;
Hjortnaes, Jesper ;
Cristino, Ana Luiza ;
Barabaschi, Giada ;
Demarchi, Danilo ;
Dokmeci, Mehmet R. ;
Yang, Yunzhi ;
Khademhosseini, Ali .
LAB ON A CHIP, 2014, 14 (13) :2202-2211
[7]   Direct-write bioprinting of cell-laden methacrylated gelatin hydrogels [J].
Bertassoni, Luiz E. ;
Cardoso, Juliana C. ;
Manoharan, Vijayan ;
Cristino, Ana L. ;
Bhise, Nupura S. ;
Araujo, Wesleyan A. ;
Zorlutuna, Pinar ;
Vrana, Nihal E. ;
Ghaemmaghami, Amir M. ;
Dokmeci, Mehmet R. ;
Khademhosseini, Ali .
BIOFABRICATION, 2014, 6 (02)
[8]   Extracellular matrix deposition by fibroblasts is necessary to promote capillary-like tube formation in vitro [J].
Berthod, F ;
Germain, L ;
Tremblay, N ;
Auger, FA .
JOURNAL OF CELLULAR PHYSIOLOGY, 2006, 207 (02) :491-498
[9]   Tubeless microfluidic angiogenesis assay with three-dimensional endothelial-lined microvessels [J].
Bischel, Lauren L. ;
Young, Edmond W. K. ;
Mader, Brianah R. ;
Beebe, David J. .
BIOMATERIALS, 2013, 34 (05) :1471-1477
[10]   In vitro reconstruction of a human capillary-like network in a tissue-engineered skin equivalent [J].
Black, AF ;
Berthod, F ;
L'Heureux, N ;
Germain, L ;
Auger, FA .
FASEB JOURNAL, 1998, 12 (13) :1331-1340